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Tunable Ion-Photon Entanglement in an Optical Cavity

机译:可调离子光子纠缠在光腔

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摘要

Proposed quantum networks require both a quantum interface between light and matter and the coherent control of quantum states,. A quantum interface can be realized by entangling the state of a single photon with the state of an atomic or solid-state quantum memory, as demonstrated in recent experiments with trapped ions,, neutral atoms,, atomic ensembles,, and nitrogen-vacancy spins. The entangling interaction couples an initial quantum memory state to two possible light–matter states, and the atomic level structure of the memory determines the available coupling paths. In previous work, these paths’ transition parameters determine the phase and amplitude of the final entangled state, unless the memory is initially prepared in a superposition state, a step that requires coherent control. Here we report the fully tunable entanglement of a single 40Ca+ ion and the polarization state of a single photon within an optical resonator. Our method, based on a bichromatic, cavity-mediated Raman transition, allows us to select two coupling paths and adjust their relative phase and amplitude. The cavity setting enables intrinsically deterministic, high-fidelity generation of any two-qubit entangled state. This approach is applicable to a broad range of candidate systems and thus presents itself as a promising method for distributing information within quantum networks.
机译:所提出的量子网络需要光和物质之间的量子界面以及量子状态的相干控制。通过用原子或固态量子存储器的状态缠绕单个光子的状态来实现量子界面,如最近捕获离子,中性原子的实验中所示, ,原子合奏和氮空位旋转 。缠绕交互将初始量子存储状态耦合到两个可能的灯质状态,并且存储器的原子水平结构确定可用的耦合路径。在先前的工作中,这些路径的转换参数确定最终纠缠状态的相位和幅度,除非最初在叠加状态 中准备了存储器,这是一个需要相干控制的步骤。在这里,我们报告了光学谐振器内单个光子的单个 40 ca + 离子的完全可调缠结。我们的方法基于双腔腔介导的拉曼转换,允许我们选择两个耦合路径并调节它们的相对相位和幅度。腔设置能够实现任何双态缠绕状态的本质上确定的,高保真生成。这种方法适用于广泛的候选系统,因此将其自身作为用于在量子网络中分配信息的有希望的方法。

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